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Picosecond fluorescence kinetic studies of electron acceptor Q redox heterogeneity
Authors:Kerry K. Karukstis  Kenneth Sauer
Affiliation:Department of Chemistry and Laboratory of Chemical Biodynamics, Lawrence Berkeley Laboratory, University of California, Berkeley, CA 94720 U.S.A.
Abstract:We have investigated the influence of chloroplast organization on the nature of chemical reductive titrations of Photosystem II fluorescence decay kinetics in spinach chloroplasts. Structural changes of the chloroplast membrane system were induced by varying the ionic environment of the thylakoids. A single-photon timing system with picosecond resolution monitored the kinetics of the chlorophyll a fluorescence emission. At all ionic concentrations studied, we have observed biphasic potentiometric titration curves of fluorescence yield; these have been interpreted to be suggestive of electron acceptor Q heterogeneity (Karukstis, K.K. and Sauer, K. (1983) Biochim. Biophys. Acta 722, 364–371; Cramer, W.A. and Butler, W.L. (1969) Biochim. Biophys. Acta 172, 503–510). A direct relation is observed between the Em value of the low-potential component of Q and the Mg2+ concentration of the chloroplast suspending medium. We have attributed these midpoint potential variations to the thylakoid structural rearrangements involved in cation-regulated grana stacking. Ionic effects on the fluorescence decay kinetics at the redox transitions are discussed in terms of the heterogeneity of Photosystem II units (α- and β-centers) and the mechanism of deexcitation at a closed reaction center (fluorescence or nonradiative decay).
Keywords:Reduction potential  Picosecond fluorescence kinetics  Photosystem II  Chlorophyll  Thylakoid stacking  (Spinach chloroplast)  DCMU  3-(3′,4′-dichlorophenyl)-1,1-dimethylurea  Hepes  reduction potential midpoint  PS  photosystem  Chl  chlorophyll
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